TUNABLE OPTICAL FILTER
A tunable PLC optical filter having sequentially connected thermally tunable Mach-Zehnder (MZ) interferometers is described. The MZ interferometers, having free spectral ranges matching ITU frequency grid spacing, are tuned so as to have a common passband centered on the frequency of the signal being selected, while having at least one of the stopbands centered on any other ITU frequency. Any other optical channel that may be present at any other ITU frequency is suppressed as a result. The PLC chip, including a zero-dispersion lattice-filter interleaver stage, a switchable fine-resolution stage and, or a retroreflector for double passing the filter, is packaged into a hot-pluggable XFP transceiver package. A compensation heater is used to keep constant the amount of heat applied to the PLC chip inside the XFP package, so as to lessen temperature variations upon tuning of the PLC optical filter.
The present invention claims priority from U.S. Patent Application No. 61/029,987 filed Feb. 20, 2008, which is incorporated herein by reference for all purposes.
TECHNICAL FIELDThe present invention relates to a tunable optical filter, and in particular to a tunable optical filter having cascaded Mach-Zehnder interferometers.
BACKGROUND OF THE INVENTIONOptical filters are devices for selecting at least one optical frequency band, called a passband, out of an optical frequency spectrum of an optical signal. A central frequency of the passband of a tunable optical filter is adjustable, depending upon a control parameter common to a particular filter type. For example, for a bulk optic tunable filter, the control parameter can be a filter tilt or a clocking (rotation) angle with respect to an incoming optical beam. For an optical waveguide based tunable filter such as tunable Mach-Zehnder (MZ) interferometer, the control parameter can be an electrical signal applied to a localized heater that changes optical path length of one of its arms, which effectively tunes the MZ interferometer.
Tuning range, spectral selectivity, and a level of cross-talk suppression are very important parameters of tunable optical filters. A wide tuning range allows a wide range of optical frequencies to be accessed and selected by a tunable filter. The spectral selectivity relates to an ability of the filter to select a narrow frequency band of a broadband optical signal. Herein, the term “narrow” means small as compared to a value of the central frequency of the optical signal being filtered, for example 1% of the central frequency or less. Finally, the crosstalk suppression is an ability of the filter to suppress optical signals at any other frequency than the frequency of the signal being selected.
In an optical communications network optical signals, having a plurality of optical channels at individual optical frequencies or wavelengths called optical frequency channels or wavelength channels, are transmitted from one location to another, typically through a length of an optical fiber. Optical frequency channels can be combined for transmission through a single optical fiber, whereby the transmission capacity of the optical fiber increases many times. Since the optical frequency channels can be amplified simultaneously in a single optical amplifier, the transmission distances are increased, while the associated transmission costs are considerably reduced.
Tunable optical filters are used in optical communications networks for selecting at least one optical frequency channel out of a plurality of channels comprising an optical communications signal. Tunable optical filters are also used for system performance monitoring purposes, e.g. for performing a spectral measurement of the entire optical communications signal, including measuring optical noise levels between the neighboring frequency channels. The tunability of the filter allows any optical frequency component within the tuning range of the filter to be selected for subsequent detection and/or signal level measurement. It is very important that such a tunable filter have an excellent crosstalk suppression. A poor crosstalk suppression leads to undesired “leaking” of the optical channels being suppressed, which impairs the signal level measurements and/or detection and decoding of the selected signal.
U.S. Pat. No. 5,596,661 entitled “Monolithic Optical Waveguide Filters based on Fourier Expansion”, issued to Henry et al. of Lucent Technologies and incorporated herein by reference, teaches a planar lightwave circuit (PLC) optical filter having a chain of optical couplers linked by different delays with a transfer function equal to the sum of the contribution from each optical path, with each contribution forming a term in a Fourier series whose sum forms the optical output. Detrimentally, the optical filter of Henry et al. is not tunable.
U.S. Pat. No. 6,208,780 entitled “System and Method for Optical Monitoring”, issued to Li et al. of Lucent Technologies and incorporated herein by reference, teaches a tunable optical filter on a PLC chip using cascaded unbalanced MZ interferometers. In the tunable filter of Li et al., successive MZ stages have twice the free spectral range (FSR) as the previous MZ stages, thereby providing a narrowband optical filter having a wide tuning range.
With reference to
European patent EP1492260A1 entitled “Optical ADD-DROP Multiplexer for WDM Systems”, issued to Crognale et al. and incorporated herein by reference, teaches a device that allows, by using selection and blocking functions of optical filtering and optical interleaving, to extract a single optical frequency channel from an optical communications signal and to insert another optical frequency channel at the same optical frequency instead of the one extracted. The device of Crognale et al. uses selective tunable filters to add or drop optical frequency channels. Detrimentally, it also requires many components such as blocking tunable filters, 1×N splitters, switches, and interleavers, which complicates the device and increases its size and cost.
An object of the present invention is to overcome the shortcomings of the prior art by providing a tunable optical filter on a single PLC chip, which combines narrowband spectral performance with wide tuning range and a high level of crosstalk suppression. Advantageously, a tunable optical filter of the present invention has no moving parts while having a switchable spectral resolution for operation at various optical frequency channel spacings. Further, advantageously, a tunable optical filter of the present invention is small enough to be placed within a single standard hot-pluggable XFP package.
SUMMARY OF THE INVENTIONAccordingly, the present invention relates to a tunable optical filter for selecting any single optical frequency channel from a plurality of equidistantly spaced optical frequency channels of an optical signal, each said optical frequency channel having a central frequency, the filter comprising:
a plurality of sequentially coupled tunable Mach-Zehnder (MZ) interferometers, each having a plurality of equidistantly spaced conterminous frequency passbands and frequency stopbands,
wherein the MZ interferometers are tunable so as to have one passband of each MZ interferometer centered on the central frequency of the single frequency channel being selected, and to have at least one of the stopbands of the MZ interferometers centered on the central frequency of each remaining optical frequency channel of the optical signal, so as to suppress each said remaining optical frequency channel of the optical signal.
According to one aspect of the present invention, the tunable MZ interferometers of the tunable filter are comprised of planar waveguides of a planar lightwave circuit (PLC) chip that is small enough to be placed within said hot-pluggable XFP transceiver package. The size reduction of the PLC chip is achieved by using a length of an optical fiber that is placed to loop back from one side of the PLC chip to another side, thereby removing a necessity to accommodate waveguide turns on the PLC chip. Alternatively, according to another aspect of the present invention, the size of the PLC chip is reduced by using a mirror attached to an edge of the chip, either for double passing through at least a portion of the PLC chip, or for reflecting at an angle from one end waveguide of the PLC chip to another end waveguide, wherein the two end waveguides form a V-shape, with a mirror being disposed at the tip of the V-shape, so as to optically couple the two said end waveguides together.
According to another aspect of the present invention, the tunable optical filter has a plurality of local heaters disposed on the top surface of the PLC chip, for thermally tuning said tunable MZ interferometers;
a compensation heater for heating said PLC chip; and
a control circuitry for thermally tuning said tunable MZ interferometers by controlling an amount of heat generated by the plurality of local heaters and by the compensation heater, so as to keep the total amount of heat generated by all said heaters equal to a constant value, within any control time interval of a sequence of control time intervals.
In accordance with another aspect of the present invention, there is further provided a method of selecting a single optical frequency channel of a plurality of optical frequency channels of an optical signal, each said optical frequency channel having a central frequency, the method comprising:
(a) providing a chain of sequentially connected tunable MZ interferometers each having a plurality of equidistantly spaced conterminous frequency passbands and frequency stopbands, said chain having an input end and an output end;
(b) applying the optical signal to the input end of the chain; and
(c) centering one passband of each tunable MZ interferometer on the central frequency of the single optical frequency channel of the optical signal, so as to have at least one of the stopbands of the tunable MZ interferometers centered on the central frequency of each remaining optical frequency channel of the optical signal, so as to suppress each said remaining optical frequency channel of the optical signal.
The invention will be described in greater detail with reference to the accompanying drawings, in which:
While the present teachings are described in conjunction with various embodiments and examples, it is not intended that the present teachings be limited to such embodiments. On the contrary, the present teachings encompass various alternatives, modifications and equivalents, as will be appreciated by those of skill in the art.
Referring to
Turning to
Referring now to
Preferably, the optical frequency channels 41 and 42 are substantially centered at an International Telecommunications Union (ITU) frequency grid, e.g. a 100 GHz ITU frequency grid or a 50 GHz ITU frequency grid. Herein, the word “substantially” means that the central frequencies of the channels 41 and 42 may somewhat deviate from the ITU grid frequencies, according to typical tolerances of corresponding transmitters, as is appreciated by those skilled in the art.
The optical filter 43 tuned as shown in
Turning now to
To achieve the functionality described in
FSRm=(2m-1)*ΔfITU, (1)
wherein m=1 . . . 5 for the interferometers 45A to 45E, and ΔfITU is an ITU grid spacing, for example, a 50 GHz or a 100 GHz grid spacing. More MZ interferometers can be used to select one optical frequency channel out of a larger number of the optical frequency channels.
With reference to
Preferably, an optical shutter or variable optical attenuator (VOA) 52 is provided at the output end of the optical filter 50 for diverting all or a portion of the output signal away from the output port 53. The optical shutter and/or VOA 52 can be comprised of a balanced MZ stage having two output ports. The difference in arm length between the arms of the balanced MZ stage in the shutter and/or VOA 52 can also be adjusted to various positions between 0° and 180° out of phase to provide variable attenuation and/or blocking function. Alternative shutter and/or VOA arrangements are possible, as is well known in the art.
The passbands and stopbands of each stage 551 to 559 are tuned by tuning the relative length of at least one arm in each of the stages using any known technique, for example a localized heater. Preferably, the tuning range of such a heater or heaters is at least two and a half wavelengths, or 5π in optical phase units. Alternative tuning arrangements are possible, as is well known in the art.
Turning now to
The passbands and stopbands of each stage 651 to 659 are tuned by tuning the relative length of each arm in each of the stages using localized heaters 67.
With further reference to
With reference to
Referring now to
Turning to
Referring now to
Turning to
One embodiment of a tunable optical filter of the present invention includes a tunable wideband interleaver for improving a passband shape and reducing chromatic dispersion of the filter. Turning to
The spectral performance of the interleaver 120 will now be illustrated. Referring to
Referring to
The chromatic dispersion of a lattice type interleaver can be brought to nearly zero by providing the two-stage interleaver 120, in which the corresponding delays of the first stage 120A are inverted in the second stage 120B and, as a result, the chromatic dispersion of the stage 120B compensates for the chromatic dispersion of the stage 120A. Turning now to
Referring now to
With reference to
According to the present invention, a PLC chip size can also be reduced by using a mirror at an edge of the PLC chip. Turning now to
An optical coupling efficiency of coupling the reflected optical signal into the waveguide 192 depends on the accuracy with which an edge 199 of the chip 190 is polished so that the waveguides 191 and 192 cross exactly at an edge of the chip 190. A polishing accuracy of only a few microns is usually required. According to the present invention, the following method can be used to achieve the required polishing precision. An electrically conducting metal trace 196 is photolithographically defined and deposited at an exact crossing point of the waveguides 191 and 192, or with an optional offset to accommodate the width of the metal trace. During polishing of the edge 199, an electrical resistance is monitored between terminals 197 and 198 of the metal trace 196. When the resistance increases sharply due to polishing off the trace 196, the polishing is stopped. Then, the mirror 193 is attached to the edge 199.
Referring now to
In the double-pass arrangement of
The embodiments of the tunable optical filter of
Referring to
The thermal sensor 236 generates an electrical signal representative of the temperature of the chip 210. This signal is digitized by the ADC 233 and, in digital form, is provided to the DSP module 231 for correcting the amount of heat generated by one or more heaters. According to one control method, the DSP module is operable to correct the amount of heat generated by the local heaters, not shown in
Referring now to
Turning to
According to an alternative method of thermal control of the present invention, the PLC chip temperature measured at the step 243 is used to periodically update the value HTOT, as is symbolically shown with a dashed arrow 243B, so as to keep the overall chip temperature constant. Once the value HTOT is updated, the total heat generated by all the heaters is controlled to be constant during a time interval called herein a “control time interval”. When one control time interval is over, the value HTOT is updated again, and another control time interval begins.
The above described features, aspects, and embodiments of the present invention can be combined by those skilled in the art. It is these many combinations of features and aspects of the present invention that should lead one to realize that the concept is broader than the embodiments and method steps disclosed. For this reason one is cautioned not to limit the invention to the disclosed embodiments, but rather encouraged to determine the scope of the invention only with reference to the following claims.
Claims
1. A tunable optical filter for selecting any single optical frequency channel from a plurality of equidistantly spaced optical frequency channels of an optical signal, each said optical frequency channel having a central frequency, the filter comprising:
- a plurality of sequentially coupled tunable Mach-Zehnder (MZ) interferometers each having a plurality of equidistantly spaced conterminous frequency passbands and frequency stopbands,
- wherein the MZ interferometers are tunable so as to have one passband of each MZ interferometer centered on the central frequency of the single frequency channel being selected, and to have at least one of the stopbands of the MZ interferometers centered on the central frequency of each remaining optical frequency channel of the optical signal, so as to suppress each said remaining optical frequency channel of the optical signal.
2. A tunable optical filter of claim 1,
- wherein the central frequencies of the optical frequency channels are substantially at an ITU frequency grid having a frequency spacing of ΔfITU, and
- wherein each MZ interferometer has a free spectral range (FSR),
- wherein, for a sub-group of M of the plurality of the MZ interferometers, the FSR of an mth MZ interferometer of the sub-group is FSRm=(2m-1)*ΔfITU, wherein m=1... M, and M is an integer ≧2.
3. A tunable optical filter of claim 2, wherein ΔfITU=50 GHz.
4. A tunable optical filter of claim 2, further comprising at least one additional MZ interferometer sequentially coupled to the MZ interferometers, having an FSR equal to the FSR of one of the sub-group of M MZ interferometers.
5. A tunable optical filter of claim 2, wherein the plurality of the MZ interferometers includes:
- one MZ interferometer with an FSR of 200 GHz;
- one MZ interferometer with an FSR of 400 GHz;
- one MZ interferometer with an FSR of 800 GHz; and
- one MZ interferometer with an FSR of 1600 GHz.
6. A tunable optical filter of claim 1, further comprising an optical shutter serially coupled to the plurality of the tunable MZ interferometers, for suppressing the optical signal during tuning of said MZ interferometers.
7. A tunable optical filter of claim 2, further comprising a switchable stage serially coupled to the plurality of the tunable MZ interferometers, the switchable stage having:
- a 1×2 optical switch having an input port for inputting the optical signal, and first and second output ports;
- a 2×1 optical switch having first and second input ports, and an output port for outputting the optical signal; and
- at least one additional tunable MZ interferometer having an input port and an output port;
- wherein the first output port of the 1×2 optical switch is coupled to the first input port of the 2×1 optical switch;
- wherein the second output port of the 1×2 optical switch is coupled to the input port of the at least one additional MZ interferometer, and wherein the output port of the at least one additional tunable MZ interferometer is coupled to the second input port of the 2×1 optical switch;
- whereby the at least one additional tunable MZ interferometer is switchable in and out of an optical path of the optical signal.
8. A tunable optical filter of claim 2, further comprising a first tunable interleaver stage serially coupled to the plurality of the tunable MZ interferometers, the first tunable interleaver stage having:
- first and second waveguides having first, second, and third waveguide couplers therebetween along the length thereof, so as to form first and second tunable MZ stages between the first and the second, and the second and the third couplers, respectively, each said tunable MZ stage having an FSR;
- wherein the FSR of the first tunable MZ stage is FSR(I)−(2k-1)*ΔfITU, wherein k is a positive integer;
- wherein the FSR of the second tunable MZ stage is FSR(II)=2*FSR(I).
9. A tunable optical filter of claim 8, further comprising a second tunable interleaver stage serially coupled to the plurality of the tunable MZ interferometers and, or to the first tunable interleaver stage, the second tunable interleaver stage having:
- third and fourth waveguides having fourth, fifth, and sixth waveguide couplers therebetween along the length thereof, so as to form third and fourth tunable MZ stages between the fourth and the fifth, and the fifth and the sixth couplers, respectively, each said tunable MZ stage having an FSR;
- wherein the FSR of the third tunable MZ stage is FSR(III)=FSR(I);
- wherein the FSR of the fourth tunable MZ stage is FSR(IV)=FSR(II);
- wherein the first and the second tunable interleaver stages each have a passband and an in-band dispersion across the corresponding passband, wherein the passbands of the first and the second interleavers are tunable to overlap each other, so as to have the in-band dispersion of the first tunable interleaver stage compensate for the in-band dispersion of the second tunable interleaver stage.
10. A tunable optical filter of claim 1, wherein the tunable MZ interferometers are comprised of planar waveguides, wherein the tunable optical filter further comprises a planar substrate for supporting the planar waveguides of the tunable MZ interferometers, the planar substrate and the planar waveguides forming a planar lightwave circuit (PLC) chip having a top surface, a bottom surface, and first and second sides.
11. A tunable optical filter of claim 10, further comprising a plurality of local heaters disposed on the top surface of the PLC chip, for thermally tuning said tunable MZ interferometers.
12. A tunable optical filter of claim 11, wherein the local heaters are for thermally tuning said tunable MZ interferometers over an optical phase range of at least 5π.
13. A tunable optical filter of claim 10,
- wherein the tunable MZ interferometers comprise first and second sections of sequentially coupled tunable MZ interferometers, each said section having an input port and an output port, wherein the output port of the first section is disposed on the first side of the PLC chip, and the input port of the second section is disposed on the second side of said PLC chip; and
- wherein the tunable optical filter further comprises an optical fiber having first and second ends, wherein the first end of the optical fiber is optically coupled to the output port of the first section, and the second end of the optical fiber is optically coupled to the input port of the second section, thereby sequentially coupling said first and said second sections, thereby forming said plurality of sequentially coupled tunable MZ interferometers.
14. A tunable optical filter of claim 10,
- wherein the sequentially coupled tunable MZ interferometers form an optical path between first and second ports thereof, wherein the second port of said optical path is disposed on the second side of the PLC chip,
- wherein the tunable optical filter further comprises a mirror disposed at the second port and optically coupled thereto, for reflecting an optical signal injected into the first port and reaching the second port after traveling along the optical path, back into said second port, along the same optical path, towards the first port.
15. A tunable optical filter of claim 14, further comprising a quarter-wave plate disposed between the second port and the mirror, for reducing polarization-dependent loss (PDL) by rotating a polarization state of the reflected optical signal.
16. A tunable optical filter of claim 14, further comprising an optical circulator optically coupled to the first port, for separating the optical signal injected into the first port and traveling along the optical path towards the second port, from the optical signal reflected from the mirror at the second port and traveling along the optical path back to the first port.
17. A tunable optical filter of claim 14, further comprising a directional coupler optically coupled to the first port, for separating the optical signal injected into the first port and traveling along the optical path towards the second port, from the optical signal reflected from the mirror at the second port and traveling along the optical path back to the first port.
18. A tunable optical filter of claim 10,
- wherein the tunable MZ interferometers comprise first and second sections of sequentially coupled tunable MZ interferometers, each said section having an end waveguide disposed at the second side of the PLC chip at an angle of between 15 and 85 degrees to said second side, so as to have said end waveguides form a V-shape,
- wherein the tunable optical filter further comprises a mirror disposed at the second side of the PLC chip substantially at a tip of said V-shape, so as to optically couple together the end waveguides of the first and the second sections of sequentially coupled tunable MZ interferometers, thereby forming said plurality of sequentially coupled tunable MZ interferometers.
19. A tunable optical filter of claim 11, further comprising:
- a compensation heater for heating said PLC chip; and
- a control circuitry suitably programmed to thermally tune said tunable MZ interferometers by controlling an amount of heat generated by the plurality of local heaters and by the compensation heater, so as to keep the total amount of heat generated by all said heaters equal to a constant value Htot, within any control time interval of a succession of control time intervals.
20. A tunable optical filter of claim 11, further comprising:
- a temperature sensor for sensing the PLC chip temperature; and
- a control circuitry suitably programmed to thermally tune said tunable MZ interferometers by controlling an amount of heat generated by the plurality of local heaters in dependence upon the PLC chip temperature sensed by the temperature sensor.
21. A tunable optical filter of claim 19, further comprising a temperature sensor for sensing the PLC chip temperature;
- wherein the control circuitry is suitably programmed to update the value Htot in dependence upon the PLC chip temperature sensed by the temperature sensor, during a time between said control time intervals, so as to lessen a variation of the PLC chip temperature.
22. A tunable optical filter of claim 19, further comprising a hot-pluggable XFP transceiver package, wherein the PLC chip, the compensation heater, and the control circuitry are disposed within said hot-pluggable XFP transceiver package.
23. A method of selecting a single optical frequency channel from a plurality of optical frequency channels of an optical signal, each said optical frequency channel having a central frequency, the method comprising:
- (a) providing a chain of sequentially connected tunable Mach-Zehnder (MZ) interferometers each having a plurality of equidistantly spaced conterminous frequency passbands and frequency stopbands, said chain having an input end and an output end;
- (b) coupling the optical signal to the input end of the chain; and
- (c) centering one passband of each tunable MZ interferometer on the central frequency of the single optical frequency channel of the optical signal, so as to have at least one of the stopbands of the tunable MZ interferometers centered on the central frequency of each remaining optical frequency channel of the optical signal, so as to suppress each said remaining optical frequency channel of the optical signal.
24. A method of measuring a signal-to-noise ratio (SNR) of a single optical frequency channel of a plurality of optical frequency channels of an optical signal, each said optical frequency channel having a central frequency, the method comprising:
- (a) selecting the single optical frequency channel using a method of claim 23;
- (b) measuring optical power of the selected single optical frequency channel;
- (b) centering one passband of each tunable MZ interferometer on a frequency disposed substantially in the middle between the central frequency of the single optical frequency channel and the central frequency of a neighboring optical frequency channel, so as to have at least one of the stopbands of the MZ interferometers centered on the central frequency of each optical frequency channel, to suppress each optical frequency channel of the optical signal;
- (c) measuring optical power of a noise signal at an output end of the chain; and
- (d) obtaining SNR by dividing the measured value of the optical power of the single optical frequency channel by the measured value of the optical power of the noise signal.
Type: Application
Filed: Feb 20, 2009
Publication Date: Oct 22, 2009
Patent Grant number: 8340523
Inventors: Jinxi Shen (San Ramon, CA), Jyoti K. Bhardwaj (Cupertino, CA), Barthelemy Fondeur (San Jose, CA), Douglas E. Crafts (Los Gatos, CA), Robert J. Brainard (Sunnyvale, CA), Boping Xie (Hayward, CA), David J. Chapman (San Jose, CA)
Application Number: 12/390,056
International Classification: H04B 10/00 (20060101);